Jin Liguo, Wu Shuilin, Mao Congyang, Wang Chaofeng, Zhu Shengli, Zheng Yufeng, Zhang Yu, Li Zhaoyang, Cui Zhenduo, Jiang Hui, Liu Xiangmei
School of Materials Science & Engineering, The Key Laboratory of Advanced Ceramics and Machining Technology By the Ministry of Education of China, Tianjin University, Tianjin, 300072, China.
Biomedical Materials Engineering Research Center, Hubei Key Laboratory of Polymer Materials, Ministry-of-Education Key Laboratory for the Green Preparation and Application of Functional Materials, School of Materials Science & Engineering, State Key Laboratory of Biocatalysis and Enzyme Engineering, Hubei University, Wuhan, 430062, China.
Bioact Mater. 2023 Aug 18;31:284-297. doi: 10.1016/j.bioactmat.2023.08.005. eCollection 2024 Jan.
()-infected chronic osteomyelitis (COM) is one of the most devastating infectious diseases with a high recurrence rate, often leading to amputation and even death. It is incurable by all the current strategies involving the clinical use of radical debridement and systemic intravenous antibiotics. Here, we reported on a microwave (MW)-assisted therapy for COM by constructing a heterojunction formed by flake nanoflower-shaped molybdenum disulfide (MoS) and tubular carbon nanotubes (CNTs). This composite could achieve a combination of MW thermal therapy (MTT) and MW dynamic therapy (MDT) to accurately and rapidly treat COM with deep tissue infection. and experiments showed that MoS/CNTs were effective in non-invasively treating -induced COM due to the heat and reactive oxygen species (ROS) produced under MW irradiation. The mechanism of heat and ROS generation was explained by MW network vector analysis, density of states (DOS), oxygen adsorption energy, differential charge and finite element (FEM) under MW irradiation. Since the Fermi layer was mainly contributed by the Mo-4d and C-2P orbitals, MoS/CNTs could store a large amount of charge and easily release more electrons. In addition, charge accumulation and dissipation motion were strong on the surface of and inside MoS/CNTs because of electromagnetic hot spots, resulting in the spilling out of a great deal of high-energy electrons. Due to the low oxygen adsorption energy of MoS/CNTs-O, these high-energy electrons combined further with the adsorbed oxygen to produce ROS.
()感染的慢性骨髓炎(COM)是最具破坏性的传染病之一,复发率高,常导致截肢甚至死亡。目前所有涉及临床彻底清创和全身静脉使用抗生素的治疗策略都无法治愈。在此,我们报道了一种用于COM的微波(MW)辅助治疗方法,通过构建由片状纳米花状二硫化钼(MoS)和管状碳纳米管(CNTs)形成的异质结来实现。这种复合材料可以实现微波热疗(MTT)和微波动态治疗(MDT)的结合,以准确、快速地治疗深部组织感染的COM。 实验表明,由于微波照射下产生的热量和活性氧(ROS),MoS/CNTs在无创治疗 - 诱导的COM方面是有效的。通过微波网络矢量分析、态密度(DOS)、氧吸附能、差分电荷和微波照射下的有限元(FEM)解释了热量和ROS产生的机制。由于费米层主要由Mo-4d和C-2P轨道贡献,MoS/CNTs可以存储大量电荷并容易释放更多电子。此外,由于电磁热点,MoS/CNTs表面和内部的电荷积累和耗散运动很强,导致大量高能电子溢出。由于MoS/CNTs-O的低氧吸附能,这些高能电子进一步与吸附的氧结合产生ROS。